Python is a core skill in machine learning, and this course equips you with the tools to apply it effectively. You’ll learn key ML concepts, build models with scikit-learn, and gain hands-on experience using Jupyter Notebooks.

Machine Learning with Python

Machine Learning with Python
This course is part of multiple programs.



Instructors: Joseph Santarcangelo
Access provided by Inter IKEA
675,006 already enrolled
18,355 reviews
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What you'll learn
Explain key concepts, tools, and roles involved in machine learning, including supervised and unsupervised learning techniques.
Apply core machine learning algorithms such as regression, classification, clustering, and dimensionality reduction using Python and scikit-learn.
Evaluate model performance using appropriate metrics, validation strategies, and optimization techniques.
Build and assess end-to-end machine learning solutions on real-world datasets through hands-on labs, projects, and practical evaluations.
Skills you'll gain
- Decision Tree Learning
- Unsupervised Learning
- Machine Learning Algorithms
- Applied Machine Learning
- Predictive Modeling
- Logistic Regression
- Machine Learning Methods
- Supervised Learning
- Predictive Analytics
- Regression Analysis
- Machine Learning
- Statistical Machine Learning
- Dimensionality Reduction
- Model Training
- Model Optimization
- Model Evaluation
Details to know

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There are 6 modules in this course
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Reviewed on Dec 29, 2019
This is a very good start for Machine leaning with Python. I didnt have much idea about ML concepts but this course gave me great understanding on each topic and lot of learning. Awesome Course !!
Reviewed on May 25, 2020
Labs were incredibly useful as a practical learning tool which therefore helped in the final assignment! I wouldn't have done well in the final assignment without it together with the lecture videos!
Reviewed on Oct 8, 2020
I'm extremely excited with what I have learnt so far. As a newbie in Machine Learning, the exposure gained will serve as the much needed foundation to delve into its application to real life problems.
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